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    المصدر: Revista de Salud Pública; Vol. 19 No. 6 (2017); 806-813 ; Revista de Salud Pública; Vol. 19 Núm. 6 (2017); 806-813 ; 2539-3596 ; 0124-0064

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    Relation: https://revistas.unal.edu.co/index.php/revsaludpublica/article/view/67950/66419; https://revistas.unal.edu.co/index.php/revsaludpublica/article/view/67950/68070; EPM. Plantas de agua EPM [Internet]. Plantas de agua EPM. 2016. Available from: https://goo.gl/JZa7JL. [URL]; Lozada PT, Escobar JC, Pérez Vidal A, Imery V R, Nates P, Sánchez G, et al. Influencia del material de enmienda en el compostaje de lodos de Plantas de Tratamiento de Aguas Residuales - PTAR. Ing E Investig. 2005; 25(2): 54-61.; Appels L, Baeyens J, Degrève J, Dewil R. Principles and potential of the anaerobic digestion of waste-activated sludge. Prog Energy Combust Sci. 2008; 34(6): 755-81.; Abdelgadir A, Chen X, Liu J, Xie X, Zhang J, Zhang K, et al. Characteristics, process parameters, and inner components of anaerobic bioreactors. Biomed Res Int. 2014; 2014.; Roy MM, Dutta A, Corscadden K, Havard P, Dickie L. Review of biosolids management options and co-incineration of a biosolid-derived fuel. Waste Manag. 2011; 31(11): 2228-35.; Fytili D, Zabaniotou A. Utilization of sewage sludge in EU application of old and new methods-A review. Renew Sustain Energy Rev. 2008;12(1): 116-40.; Sidhu JPS, Toze SG. Human pathogens and their indicators in biosolids: A literature review. Environ Int. 2009;35(1): 187-201.; Bibby K, Viau E, Peccia J. Pyrosequencing of the 16S Rrna gene to reveal bacterial pathogen diversity in biosolids. Water Res. 2010; 44(14): 4252-60.; Wéry N, Lhoutellier C, Ducray F, Delgenès JP, Godon JJ. Behaviour of pathogenic and indicator bacteria during urban wastewater treatment and sludge composting, as revealed by quantitative PCR. Water Res. 2008; 42(1-2): 53-62.; Yu Z, García-González R, Schanbacher FL, Morrison M. Evaluations of different hypervariable regions of archaeal 16S rRNA genes in profiling of methanogens by Archaea-specific PCR and denaturing gradient gel electrophoresis. Appl Environ Microbiol. 2008; 74(3): 889-93.; Zhang T, Shao M, Ye L. 454 Pyrosequencing reveals bacterial diversity of avtivated sludge from 14 sewage treatment plants. ISME J. 2012; 6: 1137-47.; Jimenez B, Maya C, Sánchez E, Romero A, Lira L, Barrios JA. Comparison of the quantity and quality of the microbiological content of sludge in countries with low and high content of pathogens. Water Sci Technol. 2002.; Bedoya-Urrego K, Acevedo-Ruíz JM, Peláez-Jaramillo CA, Agudelo-López S del P. Caracterización de biosólidos generados en la planta de tratamiento de agua residual San Fernando, Itagüí (Antioquia, Colombia). Rev. Salud Publica. (Bogotá) 2013; 15(5): 778-90.; Frank JA, Reich CI, Sharma S, Weisbaum JS, Wilson BA, Olsen GJ. Critical evaluation of two primers commonly used for amplification of bacterial 16S rRNA genes. Appl Environ Microbiol. 2008; 74(8): 2461-70.; Muyzer G, De Waal EC, Uitterlinden AG. Profiling of complex microbial populations by denaturing gradient gel elec-trophoresis analysis of polymerase chain reaction-amplified genes coding for 16S rRNA. Appl Environ Microbiol. 1993;59(3):695-700.; Engelbrektson A, Kunin V, Wrighton KC, Zvenigorodsky N, Chen F, Ochman H, et al. Experimental factors affecting PCR-based estimates of microbial species richness and evenness. ISME J. 2010;4(5):642-7.; Quince C, Lanzen A, Davenport RJ, Turnbaugh PJ. Removing Noise From Pyrosequenced Amplicons. BMC Bioinformatics. 2011; 12(1): 38.; Cole JR, Wang Q, Fish JA, Chai B, McGarrell DM, Sun Y, et al. Ribosomal Database Project: Data and tools for high throughput rRNA analysis. Nucleic Acids Res. 2014; 42(D1): 1-10.; Lu X, Zhang X, Wang Z, Huang K, Wang Y, Liang W, et al. Bacterial Pathogens and Community Composition in Advanced Sewage Treatment Systems Revealed by Metage-nomics Analysis Based on High-Throughput Sequencing. PLoS One. 2015; Klang J, Theuerl S, Szewzyk U, Huth M, Tólle R, Klocke M. Dynamic variation of the microbial community structure during the long-time mono-fermentation of maize and sugar beet silage. Microb Biotechnol. 2015; 8(5): 764-75.; Hofstad T, Olsen I, Eribe ER, Falsen E, Collins MD, Lawson P A. Dysgonomonas gen. nov. to accommodate Dysgonomonas gadei sp. nov., an organism isolated from a human gall bladder, and Dysgonomonas capnocytophagoides (formerly CDC group DF-3). Int J Syst Evol Microbiol. 2000;50(6): 2189-95.; Lawson PA, Carlson P, Wernersson S, Moore ERB, Falsen E. Dysgonomonas hofstadii sp. nov., isolated from a human clinical source. Anaerobe. 2010; 16(2): 161-4.; Pramono AK, Sakamoto M, Iino T, Hongoh Y, Ohkuma M. Dysgonomonas termitidis sp. Nov., isolated from the gut of the subterranean termite Reticulitermes speratus. Int J Syst Evol Microbiol. 2015; 65(2): 681-5.; Krakat N, Schmidt S, Scherer P. Potential impact of process parameters upon the bacterial diversity in the mesophilic anaerobic digestion of beet silage. Bioresour Technol. 2011; 102(10): 5692-701.; Gagliano MC, Braguglia CM, Petruccioli M, Rossetti S. Ecology and biotechnological potential of the thermophilic fermentative Coprothermobacter spp. FEMS Microbiol Ecol. 2015; 91(5): 1-12.; Peix A, Ramirez-Bahena MH, Velazquez E. Historical evolution and current status of the taxonomy of genus Pseudomonas. Infect Genet Evol. 2009; 9(6): 1132-47.; https://revistas.unal.edu.co/index.php/revsaludpublica/article/view/67950

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